Department of Bacterial Molecular Genetics, Faculty of Biology, University of Gdansk, Wita Stwosza 59, 80-308 Gdansk, Poland.
Department of Biochemistry and Molecular Biology, Center of RNA Molecular Biology, Pennsylvania State University, University Park, PA 16802, USA.
Biochim Biophys Acta Gene Regul Mech. 2018 Aug;1861(8):731-742. doi: 10.1016/j.bbagrm.2018.07.005. Epub 2018 Jul 18.
Precise regulation of gene expression is crucial for bacteria to respond to changing environmental conditions. In addition to protein factors affecting RNA polymerase (RNAP) activity, second messengers play an important role in transcription regulation, such as well-known effectors of the stringent response: guanosine 5'triphosphate-3'diphosphate and guanosine 3', 5'-bis(diphosphate) [(p)ppGpp]. Although much is known about importance of the 5' and 3' moieties of (p)ppGpp, the role of the guanine base remains somewhat cryptic. Here, we use (p)ppGpp's adenine analogs [(p)ppApp] to investigate how the nucleobase contributes to determine its binding site and transcriptional regulation. We determined X-ray crystal structure of Escherichia coli RNAP-(p)ppApp complex, which shows the analogs bind near the active site and switch regions of RNAP. We have also explored the regulatory effects of (p)ppApp on transcription initiating from the well-studied E. coli rrnB P1 promoter to assess and compare properties of (p)ppApp with (p)ppGpp. We demonstrate that contrary to (p)ppGpp, (p)ppApp activates transcription at this promoter and DksA hinders this effect. Moreover, pppApp exerts a stronger effect than ppApp. We also show that when ppGpp and pppApp are present together, the outcome depends on which one of them was pre-incubated with RNAP first. This behavior suggests a surprising Yin-Yang like reciprocal plasticity of RNAP responses at a single promoter, occasioned simply by pre-exposure to one or the other nucleotide. Our observations underscore the importance of the (p)ppNpp's purine nucleobase for interactions with RNAP, which may lead to a better fundamental understanding of (p)ppGpp regulation of RNAP activity.
精确调控基因表达对于细菌应对环境变化至关重要。除了影响 RNA 聚合酶 (RNAP) 活性的蛋白质因子外,第二信使在转录调控中也起着重要作用,如广为人知的严谨反应效应物:鸟苷 5'-三磷酸-3'-二磷酸和鸟苷 3',5'-双(二磷酸)[(p)ppGpp]。尽管人们对 (p)ppGpp 的 5'和 3'部分的重要性了解很多,但鸟嘌呤碱基的作用仍然有些神秘。在这里,我们使用 (p)ppGpp 的腺嘌呤类似物 [(p)ppApp] 来研究核碱基如何决定其结合位点和转录调控。我们确定了大肠杆菌 RNAP-(p)ppApp 复合物的 X 射线晶体结构,该结构显示类似物结合在 RNAP 的活性位点和开关区域附近。我们还探索了 (p)ppApp 对从研究充分的大肠杆菌 rrnB P1 启动子起始转录的调控作用,以评估和比较 (p)ppApp 与 (p)ppGpp 的性质。我们证明,与 (p)ppGpp 相反,(p)ppApp 激活该启动子的转录,而 DksA 则阻碍这种效应。此外,pppApp 比 ppApp 产生更强的效应。我们还表明,当 ppGpp 和 pppApp 同时存在时,结果取决于它们中的哪一个先与 RNAP 预孵育。这种行为表明,在单个启动子上,RNAP 反应的惊人的阴阳似的可塑性,仅仅是由于先暴露于一种或另一种核苷酸。我们的观察结果强调了 (p)ppNpp 的嘌呤核碱基与 RNAP 相互作用的重要性,这可能有助于更好地理解 (p)ppGpp 对 RNAP 活性的调控。